mm.c 21 KB

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  1. #include "mm.h"
  2. #include "mm-types.h"
  3. #include "slab.h"
  4. #include <common/printk.h>
  5. #include <common/kprint.h>
  6. #include <driver/multiboot2/multiboot2.h>
  7. #include <process/process.h>
  8. #include <common/compiler.h>
  9. #include <common/errno.h>
  10. #include <debug/traceback/traceback.h>
  11. uint64_t mm_Total_Memory = 0;
  12. uint64_t mm_total_2M_pages = 0;
  13. struct memory_desc memory_management_struct = {{0}, 0};
  14. /**
  15. * @brief 从页表中获取pdt页表项的内容
  16. *
  17. * @param proc_page_table_addr 页表的地址
  18. * @param is_phys 页表地址是否为物理地址
  19. * @param virt_addr_start 要清除的虚拟地址的起始地址
  20. * @param length 要清除的区域的长度
  21. * @param clear 是否清除标志位
  22. */
  23. uint64_t mm_get_PDE(ul proc_page_table_addr, bool is_phys, ul virt_addr, bool clear);
  24. /**
  25. * @brief 检查页表是否存在不为0的页表项
  26. *
  27. * @param ptr 页表基指针
  28. * @return int8_t 存在 -> 1
  29. * 不存在 -> 0
  30. */
  31. int8_t mm_check_page_table(uint64_t *ptr)
  32. {
  33. for (int i = 0; i < 512; ++i, ++ptr)
  34. {
  35. if (*ptr != 0)
  36. return 1;
  37. }
  38. return 0;
  39. }
  40. void mm_init()
  41. {
  42. kinfo("Initializing memory management unit...");
  43. // 设置内核程序不同部分的起止地址
  44. memory_management_struct.kernel_code_start = (ul)&_text;
  45. memory_management_struct.kernel_code_end = (ul)&_etext;
  46. memory_management_struct.kernel_data_end = (ul)&_edata;
  47. memory_management_struct.rodata_end = (ul)&_erodata;
  48. memory_management_struct.start_brk = (ul)&_end;
  49. struct multiboot_mmap_entry_t mb2_mem_info[512];
  50. int count;
  51. multiboot2_iter(multiboot2_get_memory, mb2_mem_info, &count);
  52. io_mfence();
  53. for (int i = 0; i < count; ++i)
  54. {
  55. io_mfence();
  56. //可用的内存
  57. if (mb2_mem_info->type == 1)
  58. mm_Total_Memory += mb2_mem_info->len;
  59. kdebug("[i=%d] mb2_mem_info[i].type=%d, mb2_mem_info[i].addr=%#018lx", i, mb2_mem_info[i].type, mb2_mem_info[i].addr);
  60. // 保存信息到mms
  61. memory_management_struct.e820[i].BaseAddr = mb2_mem_info[i].addr;
  62. memory_management_struct.e820[i].Length = mb2_mem_info[i].len;
  63. memory_management_struct.e820[i].type = mb2_mem_info[i].type;
  64. memory_management_struct.len_e820 = i;
  65. // 脏数据
  66. if (mb2_mem_info[i].type > 4 || mb2_mem_info[i].len == 0 || mb2_mem_info[i].type < 1)
  67. break;
  68. }
  69. printk("[ INFO ] Total amounts of RAM : %ld bytes\n", mm_Total_Memory);
  70. // 计算有效内存页数
  71. io_mfence();
  72. for (int i = 0; i < memory_management_struct.len_e820; ++i)
  73. {
  74. if (memory_management_struct.e820[i].type != 1)
  75. continue;
  76. io_mfence();
  77. // 将内存段的起始物理地址按照2M进行对齐
  78. ul addr_start = PAGE_2M_ALIGN(memory_management_struct.e820[i].BaseAddr);
  79. // 将内存段的终止物理地址的低2M区域清空,以实现对齐
  80. ul addr_end = ((memory_management_struct.e820[i].BaseAddr + memory_management_struct.e820[i].Length) & PAGE_2M_MASK);
  81. // 内存段不可用
  82. if (addr_end <= addr_start)
  83. continue;
  84. io_mfence();
  85. mm_total_2M_pages += ((addr_end - addr_start) >> PAGE_2M_SHIFT);
  86. }
  87. kinfo("Total amounts of 2M pages : %ld.", mm_total_2M_pages);
  88. // 物理地址空间的最大地址(包含了物理内存、内存空洞、ROM等)
  89. ul max_addr = memory_management_struct.e820[memory_management_struct.len_e820].BaseAddr + memory_management_struct.e820[memory_management_struct.len_e820].Length;
  90. // 初始化mms的bitmap
  91. // bmp的指针指向截止位置的4k对齐的上边界(防止修改了别的数据)
  92. io_mfence();
  93. memory_management_struct.bmp = (unsigned long *)((memory_management_struct.start_brk + PAGE_4K_SIZE - 1) & PAGE_4K_MASK);
  94. memory_management_struct.bits_size = max_addr >> PAGE_2M_SHIFT; // 物理地址空间的最大页面数
  95. memory_management_struct.bmp_len = (((unsigned long)(max_addr >> PAGE_2M_SHIFT) + sizeof(unsigned long) * 8 - 1) / 8) & (~(sizeof(unsigned long) - 1)); // bmp由多少个unsigned long变量组成
  96. io_mfence();
  97. // 初始化bitmap, 先将整个bmp空间全部置位。稍后再将可用物理内存页复位。
  98. memset(memory_management_struct.bmp, 0xff, memory_management_struct.bmp_len);
  99. io_mfence();
  100. // 初始化内存页结构
  101. // 将页结构映射于bmp之后
  102. memory_management_struct.pages_struct = (struct Page *)(((unsigned long)memory_management_struct.bmp + memory_management_struct.bmp_len + PAGE_4K_SIZE - 1) & PAGE_4K_MASK);
  103. memory_management_struct.count_pages = max_addr >> PAGE_2M_SHIFT;
  104. memory_management_struct.pages_struct_len = ((max_addr >> PAGE_2M_SHIFT) * sizeof(struct Page) + sizeof(long) - 1) & (~(sizeof(long) - 1));
  105. // 将pages_struct全部清空,以备后续初始化
  106. memset(memory_management_struct.pages_struct, 0x00, memory_management_struct.pages_struct_len); // init pages memory
  107. io_mfence();
  108. // 初始化内存区域
  109. memory_management_struct.zones_struct = (struct Zone *)(((ul)memory_management_struct.pages_struct + memory_management_struct.pages_struct_len + PAGE_4K_SIZE - 1) & PAGE_4K_MASK);
  110. io_mfence();
  111. // 由于暂时无法计算zone结构体的数量,因此先将其设为0
  112. memory_management_struct.count_zones = 0;
  113. io_mfence();
  114. // zones-struct 成员变量暂时按照5个来计算
  115. memory_management_struct.zones_struct_len = (10 * sizeof(struct Zone) + sizeof(ul) - 1) & (~(sizeof(ul) - 1));
  116. io_mfence();
  117. memset(memory_management_struct.zones_struct, 0x00, memory_management_struct.zones_struct_len);
  118. // ==== 遍历e820数组,完成成员变量初始化工作 ===
  119. for (int i = 0; i < memory_management_struct.len_e820; ++i)
  120. {
  121. io_mfence();
  122. if (memory_management_struct.e820[i].type != 1) // 不是操作系统可以使用的物理内存
  123. continue;
  124. ul addr_start = PAGE_2M_ALIGN(memory_management_struct.e820[i].BaseAddr);
  125. ul addr_end = (memory_management_struct.e820[i].BaseAddr + memory_management_struct.e820[i].Length) & PAGE_2M_MASK;
  126. if (addr_end <= addr_start)
  127. continue;
  128. // zone init
  129. struct Zone *z = memory_management_struct.zones_struct + memory_management_struct.count_zones;
  130. ++memory_management_struct.count_zones;
  131. z->zone_addr_start = addr_start;
  132. z->zone_addr_end = addr_end;
  133. z->zone_length = addr_end - addr_start;
  134. z->count_pages_using = 0;
  135. z->count_pages_free = (addr_end - addr_start) >> PAGE_2M_SHIFT;
  136. z->total_pages_link = 0;
  137. z->attr = 0;
  138. z->gmd_struct = &memory_management_struct;
  139. z->count_pages = (addr_end - addr_start) >> PAGE_2M_SHIFT;
  140. z->pages_group = (struct Page *)(memory_management_struct.pages_struct + (addr_start >> PAGE_2M_SHIFT));
  141. // 初始化页
  142. struct Page *p = z->pages_group;
  143. for (int j = 0; j < z->count_pages; ++j, ++p)
  144. {
  145. p->zone = z;
  146. p->addr_phys = addr_start + PAGE_2M_SIZE * j;
  147. p->attr = 0;
  148. p->ref_counts = 0;
  149. p->age = 0;
  150. // 将bmp中对应的位 复位
  151. *(memory_management_struct.bmp + ((p->addr_phys >> PAGE_2M_SHIFT) >> 6)) ^= (1UL << ((p->addr_phys >> PAGE_2M_SHIFT) % 64));
  152. }
  153. }
  154. // 初始化0~2MB的物理页
  155. // 由于这个区间的内存由多个内存段组成,因此不会被以上代码初始化,需要我们手动配置page[0]。
  156. io_mfence();
  157. memory_management_struct.pages_struct->zone = memory_management_struct.zones_struct;
  158. memory_management_struct.pages_struct->addr_phys = 0UL;
  159. set_page_attr(memory_management_struct.pages_struct, PAGE_PGT_MAPPED | PAGE_KERNEL_INIT | PAGE_KERNEL);
  160. memory_management_struct.pages_struct->ref_counts = 1;
  161. memory_management_struct.pages_struct->age = 0;
  162. // 将第0页的标志位给置上
  163. //*(memory_management_struct.bmp) |= 1UL;
  164. // 计算zone结构体的总长度(按照64位对齐)
  165. memory_management_struct.zones_struct_len = (memory_management_struct.count_zones * sizeof(struct Zone) + sizeof(ul) - 1) & (~(sizeof(ul) - 1));
  166. ZONE_DMA_INDEX = 0;
  167. ZONE_NORMAL_INDEX = 0;
  168. ZONE_UNMAPPED_INDEX = 0;
  169. // kdebug("ZONE_DMA_INDEX=%d\tZONE_NORMAL_INDEX=%d\tZONE_UNMAPPED_INDEX=%d", ZONE_DMA_INDEX, ZONE_NORMAL_INDEX, ZONE_UNMAPPED_INDEX);
  170. // 设置内存页管理结构的地址,预留了一段空间,防止内存越界。
  171. memory_management_struct.end_of_struct = (ul)((ul)memory_management_struct.zones_struct + memory_management_struct.zones_struct_len + sizeof(long) * 32) & (~(sizeof(long) - 1));
  172. // 初始化内存管理单元结构所占的物理页的结构体
  173. ul mms_max_page = (virt_2_phys(memory_management_struct.end_of_struct) >> PAGE_2M_SHIFT); // 内存管理单元所占据的序号最大的物理页
  174. // kdebug("mms_max_page=%ld", mms_max_page);
  175. struct Page *tmp_page = NULL;
  176. ul page_num;
  177. // 第0个page已经在上方配置
  178. for (ul j = 1; j <= mms_max_page; ++j)
  179. {
  180. barrier();
  181. tmp_page = memory_management_struct.pages_struct + j;
  182. page_init(tmp_page, PAGE_PGT_MAPPED | PAGE_KERNEL | PAGE_KERNEL_INIT);
  183. page_num = tmp_page->addr_phys >> PAGE_2M_SHIFT;
  184. *(memory_management_struct.bmp + (page_num >> 6)) |= (1UL << (page_num % 64));
  185. ++tmp_page->zone->count_pages_using;
  186. --tmp_page->zone->count_pages_free;
  187. }
  188. kinfo("Memory management unit initialize complete!");
  189. flush_tlb();
  190. // todo: 在这里增加代码,暂时停止视频输出,否则可能会导致图像数据写入slab的区域,从而造成异常
  191. // 初始化slab内存池
  192. slab_init();
  193. page_table_init();
  194. }
  195. /**
  196. * @brief 初始化内存页
  197. *
  198. * @param page 内存页结构体
  199. * @param flags 标志位
  200. * 本函数只负责初始化内存页,允许对同一页面进行多次初始化
  201. * 而维护计数器及置位bmp标志位的功能,应当在分配页面的时候手动完成
  202. * @return unsigned long
  203. */
  204. unsigned long page_init(struct Page *page, ul flags)
  205. {
  206. page->attr |= flags;
  207. // 若页面的引用计数为0或是共享页,增加引用计数
  208. if ((!page->ref_counts) || (page->attr & PAGE_SHARED))
  209. {
  210. ++page->ref_counts;
  211. barrier();
  212. ++page->zone->total_pages_link;
  213. }
  214. return 0;
  215. }
  216. /**
  217. * @brief 从已初始化的页结构中搜索符合申请条件的、连续num个struct page
  218. *
  219. * @param zone_select 选择内存区域, 可选项:dma, mapped in pgt(normal), unmapped in pgt
  220. * @param num 需要申请的连续内存页的数量 num<64
  221. * @param flags 将页面属性设置成flag
  222. * @return struct Page*
  223. */
  224. struct Page *alloc_pages(unsigned int zone_select, int num, ul flags)
  225. {
  226. ul zone_start = 0, zone_end = 0;
  227. if (num >= 64 && num <= 0)
  228. {
  229. kerror("alloc_pages(): num is invalid.");
  230. return NULL;
  231. }
  232. ul attr = flags;
  233. switch (zone_select)
  234. {
  235. case ZONE_DMA:
  236. // DMA区域
  237. zone_start = 0;
  238. zone_end = ZONE_DMA_INDEX;
  239. attr |= PAGE_PGT_MAPPED;
  240. break;
  241. case ZONE_NORMAL:
  242. zone_start = ZONE_DMA_INDEX;
  243. zone_end = ZONE_NORMAL_INDEX;
  244. attr |= PAGE_PGT_MAPPED;
  245. break;
  246. case ZONE_UNMAPPED_IN_PGT:
  247. zone_start = ZONE_NORMAL_INDEX;
  248. zone_end = ZONE_UNMAPPED_INDEX;
  249. attr = 0;
  250. break;
  251. default:
  252. kerror("In alloc_pages: param: zone_select incorrect.");
  253. // 返回空
  254. return NULL;
  255. break;
  256. }
  257. for (int i = zone_start; i <= zone_end; ++i)
  258. {
  259. if ((memory_management_struct.zones_struct + i)->count_pages_free < num)
  260. continue;
  261. struct Zone *z = memory_management_struct.zones_struct + i;
  262. // 区域对应的起止页号
  263. ul page_start = (z->zone_addr_start >> PAGE_2M_SHIFT);
  264. ul page_end = (z->zone_addr_end >> PAGE_2M_SHIFT);
  265. ul tmp = 64 - page_start % 64;
  266. for (ul j = page_start; j < page_end; j += ((j % 64) ? tmp : 64))
  267. {
  268. // 按照bmp中的每一个元素进行查找
  269. // 先将p定位到bmp的起始元素
  270. ul *p = memory_management_struct.bmp + (j >> 6);
  271. ul shift = j % 64;
  272. ul tmp_num = ((1UL << num) - 1);
  273. for (ul k = shift; k < 64; ++k)
  274. {
  275. // 寻找连续num个空页
  276. if (!((k ? ((*p >> k) | (*(p + 1) << (64 - k))) : *p) & tmp_num))
  277. {
  278. ul start_page_num = j + k - shift; // 计算得到要开始获取的内存页的页号
  279. for (ul l = 0; l < num; ++l)
  280. {
  281. struct Page *x = memory_management_struct.pages_struct + start_page_num + l;
  282. // 分配页面,手动配置属性及计数器
  283. // 置位bmp
  284. *(memory_management_struct.bmp + ((x->addr_phys >> PAGE_2M_SHIFT) >> 6)) |= (1UL << (x->addr_phys >> PAGE_2M_SHIFT) % 64);
  285. ++(z->count_pages_using);
  286. --(z->count_pages_free);
  287. x->attr = attr;
  288. }
  289. // 成功分配了页面,返回第一个页面的指针
  290. // kwarn("start page num=%d\n", start_page_num);
  291. return (struct Page *)(memory_management_struct.pages_struct + start_page_num);
  292. }
  293. }
  294. }
  295. }
  296. kBUG("Cannot alloc page, ZONE=%d\tnums=%d, mm_total_2M_pages=%d", zone_select, num, mm_total_2M_pages);
  297. return NULL;
  298. }
  299. /**
  300. * @brief 清除页面的引用计数, 计数为0时清空除页表已映射以外的所有属性
  301. *
  302. * @param p 物理页结构体
  303. * @return unsigned long
  304. */
  305. unsigned long page_clean(struct Page *p)
  306. {
  307. --p->ref_counts;
  308. --p->zone->total_pages_link;
  309. // 若引用计数为空,则清空除PAGE_PGT_MAPPED以外的所有属性
  310. if (!p->ref_counts)
  311. {
  312. p->attr &= PAGE_PGT_MAPPED;
  313. }
  314. return 0;
  315. }
  316. /**
  317. * @brief Get the page's attr
  318. *
  319. * @param page 内存页结构体
  320. * @return ul 属性
  321. */
  322. ul get_page_attr(struct Page *page)
  323. {
  324. if (page == NULL)
  325. {
  326. kBUG("get_page_attr(): page == NULL");
  327. return EPAGE_NULL;
  328. }
  329. else
  330. return page->attr;
  331. }
  332. /**
  333. * @brief Set the page's attr
  334. *
  335. * @param page 内存页结构体
  336. * @param flags 属性
  337. * @return ul 错误码
  338. */
  339. ul set_page_attr(struct Page *page, ul flags)
  340. {
  341. if (page == NULL)
  342. {
  343. kBUG("get_page_attr(): page == NULL");
  344. return EPAGE_NULL;
  345. }
  346. else
  347. {
  348. page->attr = flags;
  349. return 0;
  350. }
  351. }
  352. /**
  353. * @brief 释放连续number个内存页
  354. *
  355. * @param page 第一个要被释放的页面的结构体
  356. * @param number 要释放的内存页数量 number<64
  357. */
  358. void free_pages(struct Page *page, int number)
  359. {
  360. if (page == NULL)
  361. {
  362. kerror("free_pages() page is invalid.");
  363. return;
  364. }
  365. if (number >= 64 || number <= 0)
  366. {
  367. kerror("free_pages(): number %d is invalid.", number);
  368. return;
  369. }
  370. ul page_num;
  371. for (int i = 0; i < number; ++i, ++page)
  372. {
  373. page_num = page->addr_phys >> PAGE_2M_SHIFT;
  374. // 复位bmp
  375. *(memory_management_struct.bmp + (page_num >> 6)) &= ~(1UL << (page_num % 64));
  376. // 更新计数器
  377. --page->zone->count_pages_using;
  378. ++page->zone->count_pages_free;
  379. page->attr = 0;
  380. }
  381. return;
  382. }
  383. /**
  384. * @brief 重新初始化页表的函数
  385. * 将所有物理页映射到线性地址空间
  386. */
  387. void page_table_init()
  388. {
  389. kinfo("Re-Initializing page table...");
  390. ul *global_CR3 = get_CR3();
  391. int js = 0;
  392. ul *tmp_addr;
  393. for (int i = 0; i < memory_management_struct.count_zones; ++i)
  394. {
  395. struct Zone *z = memory_management_struct.zones_struct + i;
  396. struct Page *p = z->pages_group;
  397. if (i == ZONE_UNMAPPED_INDEX && ZONE_UNMAPPED_INDEX != 0)
  398. break;
  399. for (int j = 0; j < z->count_pages; ++j)
  400. {
  401. mm_map_proc_page_table((uint64_t)get_CR3(), true, (ul)phys_2_virt(p->addr_phys), p->addr_phys, PAGE_2M_SIZE, PAGE_KERNEL_PAGE, false, true, false);
  402. ++p;
  403. ++js;
  404. }
  405. }
  406. flush_tlb();
  407. kinfo("Page table Initialized. Affects:%d", js);
  408. }
  409. /**
  410. * @brief 从页表中获取pdt页表项的内容
  411. *
  412. * @param proc_page_table_addr 页表的地址
  413. * @param is_phys 页表地址是否为物理地址
  414. * @param virt_addr_start 要清除的虚拟地址的起始地址
  415. * @param length 要清除的区域的长度
  416. * @param clear 是否清除标志位
  417. */
  418. uint64_t mm_get_PDE(ul proc_page_table_addr, bool is_phys, ul virt_addr, bool clear)
  419. {
  420. ul *tmp;
  421. if (is_phys)
  422. tmp = phys_2_virt((ul *)((ul)proc_page_table_addr & (~0xfffUL)) + ((virt_addr >> PAGE_GDT_SHIFT) & 0x1ff));
  423. else
  424. tmp = (ul *)((ul)proc_page_table_addr & (~0xfffUL)) + ((virt_addr >> PAGE_GDT_SHIFT) & 0x1ff);
  425. // pml4页表项为0
  426. if (*tmp == 0)
  427. return 0;
  428. tmp = phys_2_virt((ul *)(*tmp & (~0xfffUL)) + ((virt_addr >> PAGE_1G_SHIFT) & 0x1ff));
  429. // pdpt页表项为0
  430. if (*tmp == 0)
  431. return 0;
  432. // 读取pdt页表项
  433. tmp = phys_2_virt(((ul *)(*tmp & (~0xfffUL)) + (((ul)(virt_addr) >> PAGE_2M_SHIFT) & 0x1ff)));
  434. if (clear) // 清除页表项的标志位
  435. return *tmp & (~0x1fff);
  436. else
  437. return *tmp;
  438. }
  439. /**
  440. * @brief 从mms中寻找Page结构体
  441. *
  442. * @param phys_addr
  443. * @return struct Page*
  444. */
  445. static struct Page *mm_find_page(uint64_t phys_addr, uint32_t zone_select)
  446. {
  447. uint32_t zone_start, zone_end;
  448. switch (zone_select)
  449. {
  450. case ZONE_DMA:
  451. // DMA区域
  452. zone_start = 0;
  453. zone_end = ZONE_DMA_INDEX;
  454. break;
  455. case ZONE_NORMAL:
  456. zone_start = ZONE_DMA_INDEX;
  457. zone_end = ZONE_NORMAL_INDEX;
  458. break;
  459. case ZONE_UNMAPPED_IN_PGT:
  460. zone_start = ZONE_NORMAL_INDEX;
  461. zone_end = ZONE_UNMAPPED_INDEX;
  462. break;
  463. default:
  464. kerror("In mm_find_page: param: zone_select incorrect.");
  465. // 返回空
  466. return NULL;
  467. break;
  468. }
  469. for (int i = zone_start; i <= zone_end; ++i)
  470. {
  471. if ((memory_management_struct.zones_struct + i)->count_pages_using == 0)
  472. continue;
  473. struct Zone *z = memory_management_struct.zones_struct + i;
  474. // 区域对应的起止页号
  475. ul page_start = (z->zone_addr_start >> PAGE_2M_SHIFT);
  476. ul page_end = (z->zone_addr_end >> PAGE_2M_SHIFT);
  477. ul tmp = 64 - page_start % 64;
  478. for (ul j = page_start; j < page_end; j += ((j % 64) ? tmp : 64))
  479. {
  480. // 按照bmp中的每一个元素进行查找
  481. // 先将p定位到bmp的起始元素
  482. ul *p = memory_management_struct.bmp + (j >> 6);
  483. ul shift = j % 64;
  484. for (ul k = shift; k < 64; ++k)
  485. {
  486. if ((*p >> k) & 1) // 若当前页已分配
  487. {
  488. uint64_t page_num = j + k - shift;
  489. struct Page *x = memory_management_struct.pages_struct + page_num;
  490. if (x->addr_phys == phys_addr) // 找到对应的页
  491. return x;
  492. }
  493. }
  494. }
  495. }
  496. return NULL;
  497. }
  498. /**
  499. * @brief 调整堆区域的大小(暂时只能增加堆区域)
  500. *
  501. * @todo 缩小堆区域
  502. * @param old_brk_end_addr 原本的堆内存区域的结束地址
  503. * @param offset 新的地址相对于原地址的偏移量
  504. * @return uint64_t
  505. */
  506. uint64_t mm_do_brk(uint64_t old_brk_end_addr, int64_t offset)
  507. {
  508. uint64_t end_addr = PAGE_2M_ALIGN(old_brk_end_addr + offset);
  509. if (offset >= 0)
  510. {
  511. for (uint64_t i = old_brk_end_addr; i < end_addr; i += PAGE_2M_SIZE)
  512. {
  513. mm_map_vma(current_pcb->mm,i, PAGE_2M_SIZE, alloc_pages(ZONE_NORMAL, 1, PAGE_PGT_MAPPED)->addr_phys, VM_USER|VM_ACCESS_FLAGS, NULL);
  514. }
  515. current_pcb->mm->brk_end = end_addr;
  516. }
  517. else
  518. {
  519. // 释放堆内存
  520. for (uint64_t i = end_addr; i < old_brk_end_addr; i += PAGE_2M_SIZE)
  521. {
  522. uint64_t phys = mm_get_PDE((uint64_t)phys_2_virt((uint64_t)current_pcb->mm->pgd), false, i, true);
  523. // 找到对应的页
  524. struct Page *p = mm_find_page(phys, ZONE_NORMAL);
  525. if (p == NULL)
  526. {
  527. kerror("cannot find page addr=%#018lx", phys);
  528. return end_addr;
  529. }
  530. free_pages(p, 1);
  531. }
  532. mm_unmap_proc_table((uint64_t)phys_2_virt((uint64_t)current_pcb->mm->pgd), false, end_addr, PAGE_2M_ALIGN(ABS(offset)));
  533. // 在页表中取消映射
  534. }
  535. return end_addr;
  536. }